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Organic acids and ethanol inhibit the oxidation of methane by mire methanotrophs.有机酸和乙醇会抑制湿地甲烷营养菌对甲烷的氧化。
FEMS Microbiol Ecol. 2011 Jul;77(1):28-39. doi: 10.1111/j.1574-6941.2011.01080.x. Epub 2011 Apr 13.
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Metabolic responses of novel cellulolytic and saccharolytic agricultural soil Bacteria to oxygen.新型纤维素分解菌和糖化农业土壤细菌对氧气的代谢反应。
Environ Microbiol. 2010 Apr;12(4):845-61. doi: 10.1111/j.1462-2920.2009.02128.x. Epub 2009 Dec 27.
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Enterobacteriaceae facilitate the anaerobic degradation of glucose by a forest soil.肠杆菌科细菌促进森林土壤对葡萄糖的厌氧降解。
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Spectrophotometric determination of iron(II) with 1,10-phenanthroline in the presence of large amounts of iron(III).在大量铁(III)存在下,用1,10 - 菲啰啉分光光度法测定铁(II)
Talanta. 1974 Apr;21(4):314-8. doi: 10.1016/0039-9140(74)80012-3.
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MEGA: a biologist-centric software for evolutionary analysis of DNA and protein sequences.MEGA:一款以生物学家为中心的用于DNA和蛋白质序列进化分析的软件。
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Degradation of cellulose by basidiomycetous fungi.担子菌纲真菌对纤维素的降解
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[Aerotolerance of strictly anaerobic microorganisms and factors of defense against oxidative stress: a review].[严格厌氧微生物的耐氧性及抗氧化应激防御因素:综述]
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SILVA: a comprehensive online resource for quality checked and aligned ribosomal RNA sequence data compatible with ARB.SILVA:一个全面的在线资源,提供经质量检查且与ARB兼容的比对核糖体RNA序列数据。
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Bacteroides cellulosilyticus sp. nov., a cellulolytic bacterium from the human gut microbial community.解纤维拟杆菌新种,一种来自人类肠道微生物群落的纤维素分解菌。
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具有功能冗余性的纤维二糖降解土壤细菌对氧气的响应存在差异。

Functionally redundant cellobiose-degrading soil bacteria respond differentially to oxygen.

机构信息

Department of Ecological Microbiology, Dr.-Hans-Frisch-Str. 1-3, University of Bayreuth, 95440 Bayreuth, Germany.

出版信息

Appl Environ Microbiol. 2011 Sep;77(17):6043-8. doi: 10.1128/AEM.00564-11. Epub 2011 Jul 8.

DOI:10.1128/AEM.00564-11
PMID:21742909
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC3165369/
Abstract

The availability of oxygen (O(2)) in aerated (i.e., water-unsaturated) soils affects the metabolic activities of aerobic and anaerobic soil prokaryotes that degrade plant-derived saccharides. Fluctuating availabilities of O(2) were imposed on agricultural soil slurries supplemented with cellobiose. Slurries were subjected to oxic conditions (48 h), followed by an anoxic period (120 h) and a final oxic period (24 h). Redox potential was stable at 500 mV during oxic periods but decreased rapidly (within 10 h) under anoxic conditions to -330 mV. The consumption of cellobiose occurred without apparent delay at all redox potentials. The metabolic activities of seven previously identified saccharolytic family-level taxa of the investigated soil were measured with newly designed quantitative PCR assays targeting the 16S rRNA. Four taxa responded to the experimental conditions. The amounts of rRNAs of Micrococcaceae and Cellulomonadaceae (Actinobacteria) increased under oxic conditions. In contrast, the RNA contents of Clostridiaceae (cluster I, Firmicutes) and two uncultured family-level-taxa, i.e., "Cellu" and "Sphingo" (both Bacteroidetes) increased under anoxic conditions. That the degradation of cellobiose was independent of the availability of O(2) and that redox potentials decreased in response to anaerobic activities indicated that the degradation of cellobiose was linked to functionally redundant cellobiose-degrading taxa capable of altering redox conditions.

摘要

有氧(即水不饱和)土壤中氧气(O(2))的可用性会影响降解植物衍生糖的好氧和厌氧土壤原核生物的代谢活动。向补充有纤维二糖的农业土壤泥浆施加波动的 O(2)可用性。泥浆先处于需氧条件(48 h),然后是缺氧期(120 h),最后是需氧期(24 h)。需氧期的氧化还原电位稳定在 500 mV,但在缺氧条件下迅速下降(在 10 h 内)至 -330 mV。在所有氧化还原电位下,纤维二糖的消耗都没有明显延迟。用新设计的针对 16S rRNA 的定量 PCR 测定法测量了先前在研究土壤中鉴定出的七种具有分解糖能力的科水平分类群的代谢活性。有四个分类群对实验条件有反应。在需氧条件下,微球菌科和纤维单胞菌科(放线菌)的 rRNA 量增加。相比之下,梭菌科(I 簇,Firmicutes)和两个未培养的科水平分类群,即“Cellu”和“Sphingo”(均为拟杆菌门)的 RNA 含量在缺氧条件下增加。纤维二糖的降解与 O(2)的可用性无关,并且氧化还原电位随厌氧活性而降低,这表明纤维二糖的降解与具有改变氧化还原条件的功能冗余纤维二糖降解分类群有关。